黏度增加有助于解释塞内加尔多嘴鱼游动时的运动控制。

IF 2.2 4区 生物学 Q2 BIOLOGY
Integrative Organismal Biology Pub Date : 2021-08-10 eCollection Date: 2021-01-01 DOI:10.1093/iob/obab024
K Lutek, E M Standen
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引用次数: 3

摘要

运动依赖于感觉信息的成功整合,以调整大脑指令和由中枢模式发生器产生的基本运动节奏。目前尚不清楚改变感觉环境如何影响运动控制。在水生环境中,对动物的机械感官反馈可以很容易地通过调节水的粘度来改变。鱼类游泳系统的计算机建模表明,没有感官反馈,高粘度系统抑制运动输出,尽管类似的电机控制输入。我们记录了6只塞内加尔多嘴鱼在从1 cP(正常水)到40 cP的四种不同粘度的水中的肌肉活动和运动学。在高粘度的水中,塞内加尔多嘴鱼在游泳时表现出增加的身体曲率、体波速度以及身体和胸鳍频率。这些变化是肌肉活动强度增加和保持自主游泳速度的结果。与感觉剥夺模型不同,完整的感觉反馈允许鱼在高粘性水中调整游泳马达控制和运动学输出,但保持典型的游泳协调。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Increasing Viscosity Helps Explain Locomotor Control in Swimming <i>Polypterus senegalus</i>.

Increasing Viscosity Helps Explain Locomotor Control in Swimming <i>Polypterus senegalus</i>.

Increasing Viscosity Helps Explain Locomotor Control in Swimming <i>Polypterus senegalus</i>.

Increasing Viscosity Helps Explain Locomotor Control in Swimming Polypterus senegalus.

Locomotion relies on the successful integration of sensory information to adjust brain commands and basic motor rhythms created by central pattern generators. It is not clearly understood how altering the sensory environment impacts control of locomotion. In an aquatic environment, mechanical sensory feedback to the animal can be readily altered by adjusting water viscosity. Computer modeling of fish swimming systems shows that, without sensory feedback, high viscosity systems dampen kinematic output despite similar motor control input. We recorded muscle activity and kinematics of six Polypterus senegalus in four different viscosities of water from 1 cP (normal water) to 40 cP. In high viscosity, P. senegalus exhibit increased body curvature, body wave speed, and body and pectoral fin frequency during swimming. These changes are the result of increased muscle activation intensity and maintain voluntary swimming speed. Unlike the sensory-deprived model, intact sensory feedback allows fish to adjust swimming motor control and kinematic output in high viscous water but maintain typical swimming coordination.

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来源期刊
CiteScore
3.70
自引率
6.70%
发文量
48
审稿时长
20 weeks
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